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Polaritonic Chemistry using the Density Matrix Renormalization Group Method

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arxiv 2407.01381 v1 pith:WVUJ7IST submitted 2024-07-01 physics.chem-ph

Polaritonic Chemistry using the Density Matrix Renormalization Group Method

classification physics.chem-ph
keywords cavitypolaritonicchemistrystrongcouplingdensitydmrgelectronic
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The emerging field of polaritonic chemistry explores the behavior of molecules under strong coupling with cavity modes. Despite recent developments in ab initio polaritonic methods for simulating polaritonic chemistry under electronic strong coupling, their capabilities are limited, especially in cases where the molecule also features strong electronic correlation. To bridge this gap, we have developed a novel method for cavity QED calculations utilizing the Density Matrix Renormalization Group (DMRG) algorithm in conjunction with the Pauli-Fierz Hamiltonian. Our approach is applied to investigate the effect of the cavity on the S0 -S1 transition of n-oligoacenes, with n ranging from 2 to 5, encompassing 22 fully correlated {\pi} orbitals in the largest pentacene molecule. Our findings indicate that the influence of the cavity intensifies with larger acenes. Additionally, we demonstrate that, unlike the full determinantal representation, DMRG efficiently optimizes and eliminates excess photonic degrees of freedom, resulting in an asymptotically constant computational cost as the photonic basis increases.

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